Time Reversal Symmetry for Efficient Robotic Manipulations in Deep Reinforcement Learning

Fuente: arXiv
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Hauptverfasser: Jiang, Yunpeng, Hu, Jianshu, Weng, Paul, Ban, Yutong
Format: Preprint
Veröffentlicht: 2025
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author Jiang, Yunpeng
Hu, Jianshu
Weng, Paul
Ban, Yutong
author_facet Jiang, Yunpeng
Hu, Jianshu
Weng, Paul
Ban, Yutong
contents Symmetry is pervasive in robotics and has been widely exploited to improve sample efficiency in deep reinforcement learning (DRL). However, existing approaches primarily focus on spatial symmetries, such as reflection, rotation, and translation, while largely neglecting temporal symmetries. To address this gap, we explore time reversal symmetry, a form of temporal symmetry commonly found in robotics tasks such as door opening and closing. We propose Time Reversal symmetry enhanced Deep Reinforcement Learning (TR-DRL), a framework that combines trajectory reversal augmentation and time reversal guided reward shaping to efficiently solve temporally symmetric tasks. Our method generates reversed transitions from fully reversible transitions, identified by a proposed dynamics-consistent filter, to augment the training data. For partially reversible transitions, we apply reward shaping to guide learning, according to successful trajectories from the reversed task. Extensive experiments on the Robosuite and MetaWorld benchmarks demonstrate that TR-DRL is effective in both single-task and multi-task settings, achieving higher sample efficiency and stronger final performance compared to baseline methods.
format Preprint
id arxiv_https___arxiv_org_abs_2505_13925
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Time Reversal Symmetry for Efficient Robotic Manipulations in Deep Reinforcement Learning
Jiang, Yunpeng
Hu, Jianshu
Weng, Paul
Ban, Yutong
Robotics
Machine Learning
Symmetry is pervasive in robotics and has been widely exploited to improve sample efficiency in deep reinforcement learning (DRL). However, existing approaches primarily focus on spatial symmetries, such as reflection, rotation, and translation, while largely neglecting temporal symmetries. To address this gap, we explore time reversal symmetry, a form of temporal symmetry commonly found in robotics tasks such as door opening and closing. We propose Time Reversal symmetry enhanced Deep Reinforcement Learning (TR-DRL), a framework that combines trajectory reversal augmentation and time reversal guided reward shaping to efficiently solve temporally symmetric tasks. Our method generates reversed transitions from fully reversible transitions, identified by a proposed dynamics-consistent filter, to augment the training data. For partially reversible transitions, we apply reward shaping to guide learning, according to successful trajectories from the reversed task. Extensive experiments on the Robosuite and MetaWorld benchmarks demonstrate that TR-DRL is effective in both single-task and multi-task settings, achieving higher sample efficiency and stronger final performance compared to baseline methods.
title Time Reversal Symmetry for Efficient Robotic Manipulations in Deep Reinforcement Learning
topic Robotics
Machine Learning
url https://arxiv.org/abs/2505.13925